[0001] This invention relates to dyes, to inks and to their use in ink jet printing ("IJP").
IJP is a non-impact printing technique in which droplets of ink are ejected through
a fine nozzle onto a substrate without bringing the nozzle into contact with the substrate.
[0002] There are many demanding performance requirements for dyes and inks used in IJP.
For example they desirably provide sharp, non-feathered images having good water-fastness,
light-fastness and optical density. The inks are often required to dry quickly when
applied to a substrate to prevent smudging, but they should not form a crust over
the tip of an ink jet nozzle because this will stop the printer from working. The
inks should also be stable to storage over time without decomposing or forming a precipitate
which could block the fine nozzle.
[0003] There is a growing demand for wide format prints which are prepared using ink jet
printing. Wide format prints are often located outdoors, for example on advertising
billboards, where they may be exposed to sunlight for long periods of time. It is
therefore desirable that the prints exhibit a high light-fastness to minimise fading.
[0004] Chemical Abstracts, CA 116:85883 discloses a light-fast yellow ink for ink jet printing
which contains a dyestuff of formula

[0005] Chemical Abstracts, CA 97:111284 and CA 108:58067 disclose yellow inks for ink jet
printing which contain the dyestuff

in the form of either the dilithium salt or the monolithium mono sodium salt.
[0006] EP 246,763 discloses a dyestuff of formula

and its use in printing.
[0007] US 3,635,944 discloses a light-fast violet disazo dyestuff for colouring cellulosic
fibres of formula

wherein R
1 and R
2 is C
1-6-alkyl and R
3 is hydrogen or phenyl.
[0008] EP 183,142 discloses a process for preparing lithium salts of anionic dyestuffs by
first converting another salt of the anionic dyestuff in aqueous solution or suspension
by means of a compound which releases calcium ions into the water-soluble or sparingly
water-soluble calcium salt of the dyestuff, which is separated from the aqueous medium
and is then converted to an aqueous dispersion by treatment with lithium sulphate
or lithium hydrogen sulphate or a mixture thereof in an equivalent amount of each
or in an excess of up to 10% into its lithium salt. The dyestuffs in EP 183,142 contain
three sulphonic acid groups in the form of their lithium salts and are stated to exhibit
superior light-fastness to dyestuffs containing only two sulphonic acid groups in
the form of their sodium salts. It is unclear whether the improved light-fastness
is attributable to the increased number of sulphonic acid groups or the conversion
to the lithium salt.
[0009] We have found that lithium salts of anionic dyes exhibit a surprisingly high light-fastness
particularly when the dyes are incorporated into inks for use in ink jet printers.
We have also found that when lithium is used in conjunction with sodium as cations
in anionic dyes, the dyes exhibit a surprisingly high aqueous solubility and a high
light-fastness.
[0010] According to a first aspect of the present invention there is provided the use of
lithium as a cation for an anionic dye to enhance the light-fastness of the dye characterised
in that the anionic dye is a water-soluble anionic dye containing at least as many
carboxy groups as sulpho groups.
[0011] The lithium cation may be used as the sole cation for the anionic dye or in combination
with other cations. For example, the lithium cation may be used together with another
alkali metal cation (preferably potassium and especially sodium cations), with ammonium
or with a quaternary ammonium cation.
[0012] The light-fastness of the dye generally increases as the proportion of lithium cations
in the total pool of cations increases. Preferably, at least 20 mole %, more preferably
at least 50 mole %, still more preferably at least 60 mole % of the cations in the
anionic dye are lithium cations. In one embodiment substantially all of the cations
in the dye are lithium cations.
[0013] In a second embodiment the lithium is used in combination with sodium as a cations
for the anionic dye. We have found that the mixed lithium/sodium salts provide anionic
dyes with a high light-fastness and a high aqueous solubility. Preferably the molar
ratio of lithium to sodium cations in the anionic dye is from 1:4 to 99:1, more preferably
from 1:4 to 3:1 and especially from 1:3 to 1.5:1, more especially from 1:2 to 1:1.
This preferred ratio of lithium to sodium cations provides an anionic dye which exhibits
an unexpectedly high light-fastness and water-fastness compared to the individual
sodium and lithium salts of the dye.
[0014] When lithium is used in combination with sodium as the cations for an anionic dye
preferably and at least 20 mole% of the total cations in the dye are lithium.
[0015] Preferably the anionic dye is a water-soluble anionic dye. Preferred water-soluble
anionic dyes are water-soluble anionic direct, reactive and acid dyes, more preferably
water-soluble anionic azo, bis azo and tris azo dyes which preferably contain one
group, more preferably two or more groups, selected from carboxy, sulpho and phosphono.
[0017] Preferably n is 0.
[0018] Preferably p is 2. More preferably p is 2 and each -COOH is meta to the azo group
(-N=N-) in Formula (1).
[0019] R
1 and R
2 are preferably methyl or ethyl, more preferably methyl.
[0020] Preferably each t is 2. More preferably each t is 2 and the -COOH groups are at the
3- and 5- positions in each phenyl group in Formula (3). Preferably R
3 is -OH or C
1-4-alkoxy, more preferably -OH or methoxy and especially -OH.
[0021] R
4 and R
5 are preferably methoxy.
[0022] Preferably a and b are 2, more preferably a and b are 2 and each -COOH is attached
meta to each azo group (-N=N-) in Formula (5).
[0023] Preferably R
6 is hydroxyethyl, more preferably R
6 is hydroxyethyl and the -SO
3H group on the phenyl ring is attached in the ortho position relative to the azo group.
[0024] Preferably R
7 is -OH.
[0025] Preferably R
8 is -COOH or -PO
3H
2. It is especially preferred that R
8 is meta to the azo group in Formula (9).
[0027] It is especially preferred that the dye according to the second aspect of the present
invention is selected from the lithium salt of a dye of the Formula (10); and (12),
because these dyes exhibit a particularly high light-fastness.
[0028] Preferably in this second aspect of the invention substantially all of the -COOH,
-SO
3H and -PO
3H
2 groups shown in the dyes of the Formulae (1),(3),(5)-(10), (12), (14)-(21) are in
the lithium salt form. Accordingly, in the dyes according to the second aspect of
the invention preferably all the carboxy groups are present as -COOLi, all the sulpho
groups are present as -SO
3Li and all the phosphono groups are present as -PO
3Li
2
[0029] The dyes of the Formulae (1),(3),(5)-(10), (12), (14)-(21) may be prepared by methods
which directly result in the lithium salt. Alternatively the dyes may be prepared
in the form of a salt with a cation other than lithium, for example the sodium or
potassium salt, followed by conversion into the lithium salt using conventional techniques,
preferably, reverse osmosis, nano-filtration, electrodialysis, dialysis, an ion exchange
technique or by precipitating the dye in free acid form followed by neutralising with
LiOH.
[0030] An example of a suitable technique for converting a dye in the form of a salt with
a cation other than the lithium into its lithium salt comprises passing a solution
of the alternative salt of a dye of Formula (1),(3),(5)-(10), (12), (14)-(21) through
an acid loaded ion exchange resin to give the free acid form of the dye. A solution/suspension
of the free acid form of the dye is then neutralised with a molar excess of lithium
hydroxide to give the lithium salt.
[0031] The lithium salt of the dyes of Formula (1) may be prepared in the form of their
sodium salts using an analogous process to that disclosed in Example 2 of EP 0 356
080. The sodium salt may then be converted to the lithium salt using any of the hereinbefore
defined methods.
[0032] The lithium salt of the dye of Formula (5) may be prepared using an analogous process
to that described in example 10 of EP 468 747 followed by conversion into the lithium
salt. Certain dyes of the Formula (5) are commercially available in as of their sodium
salt, for example CI Direct Yellow 173.
[0033] The lithium salt of the dye of Formula (6) may be prepared using conventional techniques,
for example by the method described on pages 5 and 6 and Example 1 of PCT publication
number WO 96/24636, followed by conversion into the lithium salt.
[0034] The lithium salt of the dye of Formula (7) may be prepared using conventional techniques,
for example, using the method described on pages 17 and 18 and Example 1 of EP 0 628
088, followed by conversion to the lithium salt as hereinbefore defined.
[0035] The lithium salt of the dye of Formula (8) may be prepared by, for example, using
the method disclosed in US 5,542,970, cols. 12 to 15, followed by conversion into
the lithium salt.
[0036] The lithium salt of the dye of Formula (9) may be prepared using conventional techniques,
for example the methods disclosed in EP 0 761 771, pages 11 to 16, and US 5,198,022,
cols. 3 to 6 followed by conversion into the lithium salt.
[0037] C.I Reactive Red 180 and C.I. Acid Red 52 are all commercially available in the free
acid form or as salts with sodium. The sodium salt may then be converted to the lithium
salt using any of the hereinbefore defined methods.
[0038] The dyes may exist in tautomeric forms other than those shown in this specification.
These tautomers are included within the scope of the present claims.
[0039] According to a third aspect of the present invention there is provided an anionic
dye in the form of a salt with a mixture of cations wherein:
(i) the cations comprise a mixture of lithium and sodium cations;
(ii) at least 20 mole % of the total cations are lithium cations; and
(iii) the molar ratio of the lithium to sodium cations is from 1:4 to 99:1.
[0040] The anionic dye salts according to the third aspect of the invention exhibit surprisingly
high light-fastness and good solubility in aqueous media compared to the light-fastness
and solubility of the individual sodium and lithium salts of the anionic dye.
[0041] Preferably the anionic dye according to the third aspect of the present invention
is an anionic direct, reactive or azo dye, more preferably an anionic azo, bis azo,
tris azo or xanthene dye, and especially an anionic azo or bis azo dye.
[0042] In a first preferred embodiment of the third aspect of the invention the anionic
dye is selected from C.I. Direct Black 19, C.I. Reactive Red 180, C.I. Acid Red 52
and a dye having one of the Formulae (1),(3),(5)-(9) as hereinbefore defined in relation
to the second aspect of the present invention.
[0043] An especially preferred anionic dye in this first preferred embodiment of the third
aspect of the present invention has any one of the of the Formulae (10) to (21), more
especially of the Formula (14) as defined in relation to the second aspect of the
invention. These preferred anionic dyes have a particularly high aqueous solubility
and provide prints which exhibit a good light-fastness when they are in the form of
a salt as hereinbefore defined in this third aspect of the invention.
[0044] Preferably the molar ratio of lithium to sodium cations in the anionic dye salt according
to the third aspect of the invention is from 1:4 to 3:1, more preferably from 1:3
to 1.5:1 and especially from 1:2 to 1:1.
[0045] The anionic dye salt according to the third aspect of the invention may have other
cations in addition to the sodium and lithium cations. For example the dye may contain
sodium, lithium and one or more additional cations selected from potassium, ammonium
and quaternary ammonium cations. It is preferred however, that the anionic dye salt
according to the third aspect of the invention is substantially free from cations
other than sodium and lithium.
[0046] The anionic dye salt according to the third aspect of the invention is preferably
prepared by mixing the sodium and lithium salts of the anionic dyes to give the required
ratio of lithium and sodium ions. Alternatively the anionic dye salt may be prepared
by conversion of the sodium salt of the anionic dye to the mixed lithium/sodium salt
using a conventional technique, for example by adding an appropriate quantity of LiOH
to an aqueous solution of the sodium salt followed by removal of the unwanted inorganic
sodium salts, for example by dialysis or reverse osmosis.
[0047] Preferably the dyes according to the second and third aspects of the invention are
purified to remove impurities, especially di- and trivalent metals, for example calcium
and magnesium. It is especially preferred that the dyes contain less than 50, more
preferably less than 20 ppm di- and trivalent metals. The dyes may be purified using
conventional techniques, for example ultra-filtration, reverse osmosis ion exchange
or a combination of such methods.
[0048] According to a fourth aspect of the present invention there is provided an ink comprising
a liquid medium and a dye according to the second or third aspect of the present invention.
[0049] The ink preferably comprises
(a) from 0.01 to 30 parts of a dye according to the second or third aspect of the
present invention; and
(b) from 70 to 99.99 parts of a liquid medium;
wherein all parts are by weight and the number of parts of (a)+(b)=100.
[0050] The number of parts of component (a) is preferably from 0.1 to 20, more preferably
from 0.5 to 15, and especially from 1 to 5 parts.
[0051] The preferred compounds and compositions in the ink are as hereinbefore defined in
relation to the second and third aspects of the invention.
[0052] Component (a) of the ink may contain a single dye or a mixture comprising two or
more dyes. A preferred mixture comprises a dye of the Formula (10) and a dye of the
Formula (2) as defined in relation to the second or third aspect of the invention.
Another preferred mixture comprises a dye of the Formula (10) and a dye of the Formula
(4) as defined in relation to the second or third aspect of the invention.
[0053] The number of parts of component (b) is preferably from 99.9 to 80, more preferably
from 99.5 to 85, especially from 99 to 95 parts.
[0054] Preferably component (a) is completely dissolved in component (b). More preferably
component (a) has a solubility in component (b) at 20°C of at least 10% by weight.
This allows the preparation of concentrates which may be used to prepare more dilute
inks and reduces the chance of the dye precipitating if evaporation of the liquid
medium occurs during storage.
[0055] Preferred liquid media include water, a mixture of water and an organic solvent and
an organic solvent free from water.
[0056] When the medium comprises a mixture of water and an organic solvent, the weight ratio
of water to organic solvent is preferably from 99:1 to 1:99, more preferably from
99:1 to 50:50 and especially from 95:5 to 80:20.
[0057] It is preferred that the organic solvent present in the mixture of water and organic
solvent is a water-miscible organic solvent or a mixture of such solvents. Preferred
water-miscible organic solvent(s) are selected from C
1-6-alkanols, for example methanol, ethanol, n-propanol, isopropanol, n-butanol, sec-butanol,
tert-butanol, isobutanol and n-pentanol; cyclic alkanols, for example cyclohexanol
and cyclopentanol; diols, preferably diols with 2 to 12 carbon atoms, for example
pentane-1,5-diol and hexane-1,6-diol; amides, for example dimethylformamide or dimethylacetamide;
amines, for example triethanolamine ethanolamine and diethanolamine; ketones or ketone-alcohols,
for example acetone, methyl ether ketone, cyclohexanone and diacetone alcohol; ethers,
for example tetrahydrofuran or dioxane; oligo- or poly-alkyleneglycols, for example
diethylene glycol, triethylene glycol, hexylene glycol, polyethylene glycol and polypropylene
glycol; alkyleneglycols or thioglycols containing a C
2-C
6-alkylene group, for example ethylene glycol, propylene glycol, butylene glycol, pentylene
glycol hexylene glycol and thiodiglycol; polyols, for example glycerol and 1,2,6-hexanetriol;
C
1-4-alkyl-ethers of polyhydric alcohols, for example 2-methoxyethanol, 2-(2-methoxyethoxy)ethanol,
2-(2-ethoxyethoxy)-ethanol, 2-[2-(2-methoxyethoxy)ethoxy] ethanol, 2-[2-(2-ethoxyethoxy)-ethoxy]-ethanol,
2-(2-butoxyethoxy)ethanol and ethyleneglycolmonoallylether; cyclic amides, for example
2-pyrrolidone, N-methyl-2-pyrrolidone, N-ethyl-2-pyrrolidone, caprolactam and 1,3-dimethylimidazolidone;
cyclic esters, for example caprolactone γ-butyrolactone; sulphoxides, for example
dimethyl sulphoxide and sulpholane or mixtures containing two or more, especially
from 2 to 8, of the aforementioned water-miscible organic solvents, for example thiodiglycol
and a second glycol or diethylene glycol and 2-pyrrolidone.
[0058] Especially preferred water-miscible organic solvents are 2-pyrrolidone; N-methylpyrrolidone;
alkylene- and oligo-alkylene-glycols, for example ethyleneglycol, diethyleneglycol,
triethyleneglycol; and lower alkyl ethers of polyhydric alcohols, for example 2-methoxy-2-ethoxy-2-ethoxyethanol;
and polyethyleneglycols with a molecular weight of up to 500.
[0059] A preferred mixture of water and water-miscible organic solvents comprises:
(i) from 60 to 99.5 parts water; and
(ii) from 0.5 to 40 parts in total of one or more solvents selected from diethylene
glycol,2-pyrrolidone, N-methylpyrrolidone, cyclohexanol, caprolcatone, caprolactam,
pentane-1,5-diol, 2-(2-butoxyethoxy)ethanol and thiodiglycol;
wherein the parts are by weight and the sum of the parts (i) and (ii) = 100.
[0060] Examples of further suitable ink media comprising a mixture of water and one or more
organic solvent(s) are given in US 4,963,189, US 4,703,113, US 4,626,284 and EP 4,251,50A
which are incorporated herein by reference thereto.
[0061] When the liquid medium comprises an organic solvent free from water, (i.e. less than
1% water by weight) the solvent preferably has a boiling point of from 30° to 200°C,
more preferably of from 40° to 150°C, especially from 50 to 125°C. The organic solvent
may be water-immiscible, water-miscible or a mixture of such solvents. Preferred water-miscible
organic solvents are any of the hereinbefore described water-miscible organic solvents
and mixtures thereof. Preferred water-immiscible solvents include, for example, aliphatic
hydrocarbons; esters, preferably ethyl acetate; chlorinated hydrocarbons, preferably
CH
2Cl
2; and ethers, preferably diethyl ether; and mixtures thereof.
[0062] When the liquid medium comprises a water-immiscible organic solvent, preferably a
polar solvent is included because this enhances solubility of the dye in the liquid
medium. Examples of polar solvents include C
1-4-alcohols. In view of the foregoing preferences it is especially preferred that where
the liquid medium is an organic solvent free from water it comprises a ketone (especially
methyl ethyl ketone) &/or an alcohol (especially a C
1-4-alkanol, more especially ethanol or propanol).
[0063] The organic solvent free from water may be a single organic solvent or a mixture
of two or more organic solvents. It is preferred that when the medium is an organic
solvent free from water it is a mixture of 2 to 5 different organic solvents. This
allows a medium to be selected which gives good control over the drying characteristics
and storage stability of the ink.
[0064] Ink media comprising an organic solvent free from water are particularly useful where
fast drying times are required and particularly when printing onto hydrophobic and
non-absorbent substrates, for example plastics, metal and glass.
[0065] The dyes according to the second and third aspects of the present invention exhibit
a high solubility in aqueous media. Accordingly it is preferred that the liquid medium
is an aqueous medium, more preferably water or a mixture of water and one or more
water-miscible organic solvent(s).
[0066] The ink may also contain additional components conventionally used in ink jet printing
inks, for example viscosity and surface tension modifiers, corrosion inhibitors, biocides,
kogation reducing additives and surfactants which may be ionic or non-ionic.
[0067] The inks provide prints which exhibit a high light-fastness. Furthermore, the inks
are stable and exhibit reduced crusting when they are incorporated into an ink jet
printer.
[0068] A fifth aspect of the invention provides a process for printing an image on a substrate
comprising applying an ink containing a dye according to the second or third aspect
of the invention to the substrate by means of an ink jet printer.
[0069] The preferred ink used in this process is an ink according to the fourth aspect of
the present invention.
[0070] The ink jet printer preferably applies the ink to the substrate in the form of droplets
which are ejected through a small orifice onto the substrate. Preferred ink jet printers
are piezoelectric ink jet printers and thermal ink jet printers. In thermal ink jet
printers, programmed pulses of heat are applied to the ink in a reservoir by means
of a resistor adjacent to the orifice, thereby causing the ink to be ejected in the
form of small droplets directed towards the substrate during relative movement between
the substrate and the orifice. In piezoelectric ink jet printers the oscillation of
a small crystal causes ejection of the ink from the orifice.
[0071] The substrate used in the ink jet printing process is preferably paper, plastic,
textile, metal or glass, more preferably paper, an overhead projector slide or a textile
material, and especially paper.
[0072] Preferred papers are plain or treated papers which may have an acid, alkaline or
neutral character. Examples of commercially available papers include, HP Premium Coated
Paper, HP Photopaper (all available from Hewlett Packard Inc), Stylus Pro 720 dpi
Coated Paper, Epson Photo Quality Glossy Film, Epson Photo Quality Glossy Paper (available
from Seiko Epson Corp.), Canon HR 101 High Resolution Paper, Canon GP 201 Glossy Paper,
Canon HG 101 High Gloss Film (all available from Canon Inc.), Wiggins Conqueror paper
(available from Wiggins Teape Ltd), Xerox Acid Paper and Xerox Alkaline paper.
[0073] Preferred textile materials are natural, synthetic and semi-synthetic materials Examples
of preferred natural textile materials include wool, silk, hair and cellulosic materials,
particularly cotton, jute, hemp, flax and linen. Examples of preferred synthetic and
semi-synthetic materials include polyamides, polyesters, polyacrylonitriles and polyurethanes.
[0074] According to a sixth aspect of the present invention there is provided a paper, an
overhead projector slide or a textile material printed with an ink according to the
fourth aspect of the invention, or by means of a process according to the fifth aspect
of the invention.
[0075] According to a seventh aspect of the present invention there is provided an ink jet
printer cartridge comprising a chamber and an ink, the ink being present in the chamber
and wherein the ink contains a dye according to the second or third aspect of the
invention. Preferably the ink is an ink according to the fourth aspect of the present
invention.
[0076] According to an eighth aspect of the present invention there is provided an ink jet
printer containing an ink jet printer cartridge, wherein the ink jet printer cartridge
is as defined in the seventh aspect of the present invention.
[0077] The invention is further illustrated by the following Examples in which all parts
and percentages are by weight unless otherwise stated.
Example 1
Dye (1)
[0078]

[0079] Dye (1) was prepared as the sodium salt using the method described in Example 3 of
PCT publication number WO 94/16021. The sodium salt was converted to the lithium salt
using stages (a) and (b) described below:
Stage (a)
[0080] The sodium salt of the dye (5g) was dissolved in distilled water (100g) with stirring.
Hydrochloric acid (1 M) was added to reduce the pH to <2. The mixture was then stirred
for 30 minutes to allow complete precipitation. The resulting slurry was filtered
through a 0.45µm filter and air dried. The solid was slurried in 0.2M hydrochloric
acid (50ml) filtered and air dried. This procedure was repeated three times.
Stage (b)
[0081] The product of stage (a) was dispersed in distilled water (100g) and the pH adjusted
to 9.5 with lithium hydroxide. The solution was freeze dried to give the title product.
Comparative (1)
[0082] The sodium salt of Dye (1).
Comparative (2)
[0083] The ammonium salt of Dye (1).
[0084] Comparative (2) was made by converting the sodium salt of Dye (1) to the ammonium
salt by the process described in stages (a) and (b) above, except that in stage (b)
there was used ammonia in the place of LiOH.
Dye (3)
[0085]

[0086] The sodium salt of Dye (3) was prepared using the process described in Example 2
of EP 0 356 080. The sodium salt was then converted to the lithium salt using the
process described above for Dye (1).
Comparative (5)
[0087] The sodium salt of Dye (3).
Comparative (6)
[0088] The ammonium salt of Dye (3).
[0089] Comparative (6) was prepared by converting the sodium salt to the lithium salt using
the same process described above for Comparative (2)
Inks
[0090] The inks shown in Table 1 comprised:
3.5 parts of the dye shown in the second column of Table 1;
5.0 parts 2-pyrrolidone;
5.0 parts thiodiglycol;
2.0 parts Surfynol 465 (a surfactant available from Air Products Inc.); and
84.5 parts water.
[0091] Each ink was prepared by dissolving the Dye shown in the second column of Table 1
(0.35g) in water (8.45g) by adding ammonia and adjusting the pH to 9.5. 2-pyrrolidone
(0.5g), thiodiglycol (0.5g) and Surfynol 465 (0.2g) were then added and the mixture
was stirred at ambient temperature. The resulting solution was filtered through a
0.45µm filter to give the ink.
Ink Jet Printing
[0092] Each ink shown in Table 1 was loaded into a HP 560 ink jet printer and was applied
to Xerox Acid paper using the ink jet printer. When the resulting prints had dried
a portion of the print was mounted, half covered, and faded in an Atlas Ci35a weatherometer.
[0093] The light-fastness of the prints was assessed by measuring the colour difference
(ΔE) between the faded and unfaded portions of the print using an X-Rite 939 spectrodensitometer.
The time shown in the column marked ΔE in Table 1 refers to the number of hours the
print was faded for in the weatherometer.
[0094] A low ΔE value indicates a small colour change after fading in the weatherometer
and therefore a high light-fastness.
[0095] Table 1 clearly show that the lithium salts of the dyes resulted in prints which
exhibit a high light fastness compared with sodium and ammonium salts.
Table 1
| Ink |
Dye |
Salt |
ΔE
(50 hours) |
ΔE
(64 hours) |
ΔE
(100 hours) |
| 1 |
Dye (1) |
Li |
- |
- |
18.8 |
| 2 |
Comparative (1) |
Na |
- |
- |
19.8 |
| 3 |
Comparative (2) |
NH4 |
- |
- |
28.2 |
| 4 |
Dye (3) |
Li |
- |
4.1 |
- |
| 5 |
Comparative (5) |
Na |
- |
4.5 |
- |
| 6 |
Comparative (6) |
NH4 |
- |
6.4 |
- |
Exemple 2
Dye (B)
[0096]

wherein the cations represented by Q are a mixture of sodium and lithium cations
and the molar ratio of lithium:sodium cations is 1:1.5.
[0097] The sodium salt of Dye (B) was prepared using the method described in Example 10
of EP 468 747. The sodium salt was then converted to the lithium salt using the process
described above for Dye (1). Dye (B) was prepared by mixing 60 parts of the sodium
salt of the dye with 40 parts of the lithium salt of the dye.
Aqueous Solubility
[0098] The weight % solubility of Dye (B) and the individual sodium and lithium salts of
Dye (B) in water at a pH of 9.5 and a temperature of 20°C were measured. The results
of the solubility measurements are shown in Table 2.
Light-Fastness
[0099] The light -fastness of Dye (B) and the individual sodium and lithium salts thereof
were measured as described in Example 1; namely by ink jet printing an ink containing
the each dye onto Xerox Acid paper and fading the prints using an Xrite Weatherometer.
The light-fastness of each dye after 50 hours of fading is shown in Table 2.
Table 2
| Dye |
Light-Fastness
(after 50 hours) |
Solubility
(wt % in water at
pH 9.5)) |
| Dye (B) |
4 |
19 |
| Sodium Salt of Dye (B) |
6 |
9 |
| Lithium Salt of Dye (B) |
5 |
10 |
Table 2 clearly shows that the mixed sodium lithium salts represented by Dye (B)
exhibit a surprisingly high aqueous solubility and light-fastness compared to the
solubility and light-fastness of the individual sodium and lithium salts of the respective
dyes.
Example 3
Inks
[0100] The inks described in Tables 3, 4 and 5 may be prepared wherein the Dye described
in the second column is the Dye described below. Numbers quoted in the third column
onwards refer to the number of parts of the relevant ingredient and all parts are
by weight. The inks may be applied to paper by thermal or piezo ink jet printing.
[0101] The following abbreviations are used in Tables 3, 4 and 5:
| PG = propylene glycol |
DEG = diethylene glycol |
| NMP = N-methyl pyrrolidone |
TFP = 2,2,3,3-tetrafluoropropanol |
| CYC = cyclohexanol |
2P = 2-pyrrolidone |
| P12 = propane-1,2-diol |
UR = Urea |
| CET= cetyl ammonium bromide |
PHO = Na2HPO4 and |
| TBT = tertiary butanol |
TDG = thiodiglycol |
| GLY = glycerol |
P-1,5 = Pentane-1,5-diol |
| H - 1,6 = Hexane 1,6-diol |
CAP = caprolactone |
| CAP-L = caprolactam |
TEA = triethanolamine |
| EG = ethylene glycol |
BUT = γ-butyrolactone |
| DEG-MBE = diethylene glycol monobutyl ether |
| PEG 200 = Polyethylene glycol (average molecular weight of 200) |
| Dyes (1), (3) are the dyes described in Example 1; |
| Dye (5) = the lithium salt of the dye of the hereinbefore defined Formula (14); |
| Dye (6) = the lithium salt of the dye of the hereinbefore defined Formula (15); |
| Dye (7) = the lithium salt of the dye of the hereinbefore defined Formula (16); |
| Dye (8) = the lithium salt of the dye of the hereinbefore defined Formula (17); |
| Dye (9) = the lithium salt of the dye of the hereinbefore defined Formula (18); |
| Dye (10) = the lithium salt of the dye of the hereinbefore defined Formula (19); |
| Dye (11) = the lithium salt of the dye of the hereinbefore defined Formula (20); and |
| Dye (12) = the lithium salt of the dye of the hereinbefore defined Formula (21). |

1. Verwendung von Lithium als Kation für einen anionischen Farbstoff, um die Lichtechtheit
des Farbstoffs zu verbessern, dadurch gekennzeichnet, daß man als anionischen Farbstoff einen wasserlöslichen anionischen Farbstoff einsetzt,
der genauso viele Carboxygruppen wie Sulfogruppen enthält.
2. Verwendung nach Anspruch 1, bei der es sich bei den Kationen im anionischen Farbstoff
zu mindestens 20 mol-% um Lithiumkationen handelt.
3. Verwendung nach Anspruch 1 oder 2, bei der man Lithium in Kombination mit Natrium
als Kationen für den anionischen Farbstoff einsetzt.
4. Verwendung nach Anspruch 3, bei der das Molarverhältnis von Lithium- zu Natriumkationen
im anionischen Farbstoff bei 1:4 bis 99:1 liegt.
5. Farbstoff, ausgewählt unter C.I. Reactive Red 180, C.I. Acid Red 52 und Farbstoff
mit einer der Formeln (1), (3) und (5) bis (9), wobei der Farbstoff in Lithiumsalzform
vorliegt:

wobei:
R3 unabhängig voneinander für Alkoxy, -OH, -Cl oder Amino,
R6 für H oder Hydroxyethyl,
R7 für -OH, -Cl oder C1-4-Alkoxy,
R8 für -COOH, -SO3H oder -PO3H2,
R9 und R10 unabhängig voneinander jeweils für Methyl oder Ethyl,
p für 1 oder 2,
n für 0 oder 1,
q und w unabhängig voneinander jeweils für 1 oder 2,
a und b unabhängig voneinander jeweils für 1 oder 2 sowie
t unabhängig voneinander jeweils für 1 oder 2 stehen.
6. Farbstoff nach Anspruch 5, ausgewählt unter Lithiumsalz eines Farbstoffs der Formeln
(10) und (12):
7. Anionischer Farbstoff, ausgewählt unter C.I. Direct Black 19, C.I. Reactive Red 180,
C.I. Acid Red 52 und Farbstoff mit einer der Formeln (1), (3) und (5) - (9) gemäß
Anspruch 5, wobei der anionische Farbstoff in Form eines Salzes mit einer Mischung
von Kationen vorliegt, wobei:
(i) die Kationen wenigstens teilweise aus einer Mischung von Lithium- und Natriumkationen
bestehen,
(ii) Lithiumkationen mindestens 20 mol-% der Gesamtkationen ausmachen und
(iii) das Molarverhältnis der Lithium- zu Natriumkationen bei 1:4 bis 99:1 liegt.
8. Tinte, wenigstens teilweise bestehend aus einem flüssigen Medium und einem Farbstoff
gemäß einem der Ansprüche 5 bis 7.
9. Verfahren zur druckmäßigen Bebilderung eines Substrats, bei dem man eine einen Farbstoff
gemäß einem der Ansprüche 5 bis 7 enthaltende Tinte mit Hilfe eines Tintenstrahldruckers
auf das Substrat aufträgt.
10. Papier, Overhead-Projektorfolie oder Textilmaterial, bedruckt mit einer Tinte gemäß
Anspruch 8.
11. Tintenstrahldruckerkartusche mit Kammer und Tinte, wobei die Tinte in der Kammer enthalten
ist, bei der die Tinte einen Farbstoff gemäß einem der Ansprüche 5 bis 7 enthält.
12. Tintenstrahldrucker mit Tintenstrahldruckerkartusche gemäß Anspruch 11.
1. Utilisation de lithium en tant que cation pour un colorant anionique destiné à renforcer
la solidité à la lumière du colorant, caractérisée en ce que le colorant anionique est un colorant anionique soluble dans l'eau contenant au moins
autant de groupes carboxy que de groupes sulfo.
2. Utilisation selon la revendication 1, dans laquelle au moins 20% en moles des cations
dans le colorant anionique sont des cations lithium.
3. Utilisation selon la revendication 1 ou la revendication 2, dans laquelle le lithium
est utilisé en association avec du sodium en tant que cations pour le colorant anionique.
4. Utilisation selon la revendication 3, dans laquelle le rapport molaire des cations
lithium aux cations sodium dans le colorant anionique est de 1:4 à 99:1.
5. Colorant choisi parmi le rouge réactif 180 C.I., le rouge acide 52 C.I. et un colorant
répondant à l'une des formules (1), (3) et (5) à (9), dans lequel le colorant est
sous forme de sel de lithium :

dans lesquelles :
chaque R3 est indépendamment un groupe alcoxy, -OH, -Cl ou amino ;
R6 est H ou un groupe hydroxyéthyle ;
R7 est -OH, -Cl ou alcoxy en C1-C4 ;
R8 est -COOH, -SO3H ou -PO3H2 ;
R9 et R10 sont chacun indépendamment un groupe méthyle ou éthyle ;
p vaut 1 ou 2 ;
n vaut 0 ou 1 ;
q et w valent chacun indépendamment 1 ou 2 ;
a et b valent chacun indépendamment 1 ou 2 ; et
chaque t vaut indépendamment 1 ou 2.
6. Colorant selon la revendication 5 choisi parmi les sels de lithium de colorants de
formules (10) et (12) :
7. Colorant anionique choisi parmi le noir direct 19 C.I., le rouge réactif 180 C.I.,
le rouge acide 52 C.I. et un colorant répondant à l'une des formules (1), (3) et (5)
- (9) telles que définies dans la revendication 5, où le colorant anionique est sous
forme de sel avec un mélange de cations dans lequel :
(i) les cations comprennent un mélange de cations lithium et sodium ;
(ii) au moins 20% en moles du total des cations sont des cations lithium ; et
(iii) le rapport molaire des cations lithium aux cations sodium est de 1:4 à 99:1.
8. Encre comprenant un milieu liquide et un colorant selon l'une quelconque des revendications
5 à 7.
9. Procédé permettant d'imprimer une image sur un substrat comprenant l'application d'une
encre contenant un colorant selon l'une quelconque des revendications 5 à 7 sur le
substrat au moyen d'une imprimante à jet d'encre.
10. Papier, transparent pour rétroprojecteur ou matière textile, imprimés avec une encre
selon la revendication 8.
11. Cartouche pour imprimante à jet d'encre comprenant une chambre et une encre, l'encre
étant présente dans la chambre, et dans laquelle l'encre contient un colorant selon
l'une quelconque des revendications 5 à 7.
12. Imprimante à jet d'encre contenant une cartouche pour imprimante à jet d'encre, dans
laquelle la cartouche pour imprimante à jet d'encre est telle que définie dans la
revendication 11.